Topological basis for understanding the behavior of the heavy-fermion metal under application of magnetic field and pressure
arXiv:1601.01182 · doi:10.1103/PhysRevB.93.205126
Abstract
Informative recent measurements on the heavy-fermion metal performed with applied magnetic field and pressure as control parameters are analyzed with the goal of establishing a sound theoretical explanation for the inferred scaling laws and non-Fermi-liquid (NFL) behavior, which demonstrate some unexpected features. Most notably, the robustness of the NFL behavior of the thermodynamic properties and of the anomalous temperature dependence of the electrical resistivity under applied pressure in zero magnetic field is at variance with the fragility of the NFL phase under application of a field. We show that a consistent topological basis for this combination of observations, as well as the empirical scaling laws, may be found within fermion-condensation theory in the emergence and destruction of a flat band, and explain that the paramagnetic NFL phase takes place without magnetic criticality, thus not from quantum critical fluctuations. Schematic and phase diagrams are presented to illuminate this scenario.
6 pages, 6 figures, added references
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